• 제목/요약/키워드: Column regeneration

검색결과 38건 처리시간 0.036초

Partisil/Partisphere 이온 교환 컬럼 재생 가이드 (Column regeneration for Partisil/Partisphere ion-exchange columns)

  • Mark Fever;Gemma Howse
    • FOCUS: LIFE SCIENCE
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    • 제1호
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    • pp.5.1-5.3
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    • 2024
  • The document discusses the regeneration of Partisil/Partisphere ion-exchange columns in chromatography. It mentions that column efficiency can diminish with use due to the accumulation of sample and/or mobile phase impurities at the head of the column. This can lead to a change in back pressure, lower column efficiency, and sometimes a change in selectivity. The document outlines a procedure that may restore column performance. The document also provides everyday practices to enhance the lifetime of a column. These include using only high-purity HPLC solvents and buffers, using freshly prepared mobile phases and buffers, filtering mobile phases to remove particulates, using appropriate sample clean-up procedures, using a guard column or pre-column filter, and working within the pressure and flow rate limitations of the column. For the regeneration of Partisil/Partisphere SAX, SCX, WAX, and WCX columns, the document suggests passing 20 column volumes of various mobile phases through the column. These include a buffer wash, distilled water, an acid wash, a chelating wash, a methanol wash, and a buffer for separation. The document emphasizes that not all of these wash steps are required for every column clean-up and that some chromatographers require only a combination of certain steps.

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실리카 기반 컬럼의 세척, 재생 및 보관 가이드 (Column cleaning, regeneration and storage of silica-based columns)

  • Matt James;Mark Fever
    • FOCUS: LIFE SCIENCE
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    • 제1호
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    • pp.1.1-1.4
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    • 2024
  • This article provides comprehensive guidance on the maintenance, cleaning, regeneration, and storage of silica-based HPLC (High-Performance Liquid Chromatography) columns. The general considerations emphasize the importance of using in-line filters and guard cartridges to protect columns from blockage and irreversible sample adsorption. While these measures help, contamination by strongly adsorbed sample components can still occur over time, leading to an increase in back pressure, loss of efficiency, and other issues. To maximize column lifetime, especially with UHPLC (Ultra-High Performance Liquid Chromatography) columns, it is advisable to use ultra-pure solvents, freshly prepared aqueous mobile phases, and to filter all samples, standards, and mobile phases. Additionally, an in-line filter system and sample clean-up on dirty samples are recommended. However, in cases of irreversible compound adsorption or column voiding, regeneration may not be possible. The document also provides specific recommendations for column cleaning procedures, including the flushing procedures for various types of columns such as reversed phase, unbonded silica, bonded normal phase, anion exchange, cation exchange, and size exclusion columns for proteins. The flushing procedures involve using specific solvents in a series to clean and regenerate the columns. It is emphasized that the flow rate during flushing should not exceed the specified limit for the particular column, and the last solvent used should be compatible with the mobile phase. Furthermore, the article outlines the storage conditions for silica based HPLC columns, highlighting the impact of storage conditions on the column's lifetime. It is recommended to flush all buffers, salts, and ion-pairing reagents from the column before storage. The storage solvent should ideally match the one used in the initial column test chromatogram provided by the manufacturer, and column end plugs should be fitted to prevent solvent evaporation and drying out of the packing bed.

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Experimental Study on Mass Transfer Rate at the Packed Column of Solar Cooling Liquid Desiccant System Using Counter Flow Configuration

  • Hengki R, R.;Choi, K.H.;Yohana, Eflita;Sukmaji, I.C.;Kim, J.R.
    • 한국태양에너지학회:학술대회논문집
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    • 한국태양에너지학회 2009년도 춘계학술발표대회 논문집
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    • pp.155-161
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    • 2009
  • Desiccant systems have been proposed as energy saving alternatives to vapor compression air conditioning for handling the latent load. Use of liquid desiccants offers several design and performance advantages over solid desiccants, especially when solar energy is used for regeneration. The liquid desiccants contact the gas inside the packed column and the heat transfer and mass transfer will occur. This proposal is try study the mass transfer and heat transfer inside the packed column of dehumidifier and regenerator systems. And later on, the rates of dehumidification and regeneration that were affected by desiccant flow rates, air temperature and humidity, and desiccant temperature and all that variation will influence the performance of the systems.

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PTSA 공정의 상세 동적 모사 (Rigorous Dynamic Simulation of PTSA Process)

  • 이혜진;고대호;문일;최대기
    • 제어로봇시스템학회:학술대회논문집
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    • 제어로봇시스템학회 2000년도 제15차 학술회의논문집
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    • pp.309-309
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    • 2000
  • The main objective of this study is to understand the regeneration step of the PTSA(Pressure and thermal swing adsorption) process below the atmospheric pressure by rigorous dynamic simulation. This target process is to recover toluene using activated carbon as an adsorbent. To do this, the dynamic simulations for the regeneration step are performed at 360, 490, 590mmHg and at high temperature after the simulation of the adsorption step at latm and 298K. A mathematical model was developed to simulate the column dynamics of the adsorption systems. This model is based on non-equilibrium, non-isothermal and non-adiabatic conditions, and axial dispersion and heat conduction are also considered. Heat transfer resistances are considered in gas-solid, gas-column wall and column wall-outside air. The LDF(Linear Driving Force) approximation model describes the mass transfer rate between the gas and solid phase. This study shows that the recovery of toluene by PTSA is more preferable than that by general TSA.

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질산성질소에 파과된 이온교환수지의 생물학적 직접 재생 (Direct Bio-regeneration of Nitrate-laden Ion-exchange Resin)

  • 남윤우;배병욱
    • 한국물환경학회지
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    • 제29권6호
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    • pp.777-781
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    • 2013
  • Ion-exchange technology is one of the best for removing nitrate from drinking water. However, problems related to the disposal of spent brine from regeneration of exhausted resins must be overcome so that ion exchange can be applied more widely and economically, especially in small communities. In this background, a combined bio-regeneration and ion-exchange system was operated in order to prove that nitrate-laden resins could be bio-regenerated through direct contact with denitrifying bacteria. A nitrate-selective A520E resin was successfully regenerated by denitrifying bacteria. The bio-regeneration efficiency of nitrate-laden resins increased with the amount of flow passed through the ion-exchange column. When the fully exhausted resin was bio-regenerated for 5 days at the flowrate of 30 BV/hr and MLSS concentration of $125{\pm}25mg/L$, 97.5% of ion-exchange capacity was recovered. Measurement of nitrate concentrations in the column effluents also revealed that less than 5% of nitrate was eluted from the resin during 5 days of bio-regeneration. This result indicates that the main mechanism of bio-regeneration is the direct reduction of nitrate by denitrifying bacteria on the resin.

입상활성탄 재생온도에 따른 정수처리 효율 평가 (Evaluation of Drinking Water Treatment Efficiency according to Regeneration Temperatures of Granular Activated Carbon (GAC))

  • 김상구;손희종;정종문;류동춘;유평종
    • 한국환경과학회지
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    • 제24권9호
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    • pp.1163-1170
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    • 2015
  • This study carried out continuous column test for estimating the regeneration efficiency with regeneration times and temperatures. More times regenerated granular activated carbon (GAC) has more ash in the GAC and has less apparent density. Two times regenerated GAC ($2^{nd}$ re-GAC) could removed the Trihalomethanes (THMs) in the water for the first two week after starting continuous column test, on the other hand five times regenerated GAC ($5^{th}$ re-GAC) did not have adsorption capacity. The THMs concentration in the effluent was almost equal or higher than that of influent at the first time of continuous column test. $2^{nd}$ re-GAC showed much more DOC adsorption capacity than $5^{th}$ re-GAC and the GAC which was regenerated with $700^{\circ}C$ had highest DOC removal efficiency among the GACs with 600, 700, 800, $900^{\circ}C$ regeneration temperatures. It is anticipated the cost of GAC regeneration could be saved more 100 million won by reducing the furnace temperature of 3rd~4th and 5th~6th about $150^{\circ}C$ compared to the current regeneration condition.

연소기체로부터 CO2 회수를 위한 건식 유동층 흡수-재생 공정의 고체순환 모사 (Modeling of Solid Circulation in a Fluidized-Bed Dry Absorption and Regeneration System for CO2 Removal from Flue Gas)

  • 최정후;박지용;이창근;조성호;손재익;류청걸;김상돈
    • Korean Chemical Engineering Research
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    • 제43권2호
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    • pp.286-293
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    • 2005
  • 기체 수송층 흡수탑과 기포 유동층 재생탑으로 구성된 $CO_2$ 회수 공정에 대한 해석의 첫 단계로 이 공정에서 고체 순환특성을 해석하였다. 흡수제 고체 입자에 대한 입도별 물질수지를 해석하여 공정의 흐름에서 고체 흐름량과 입도 분포를 결정하였다. 실험실 규모 공정(흡수탑: 직경 25 mm, 높이 6 m; 재생탑: 직경 0.1 m, 높이 1.2 m)에서 고체순환특성을 모사하였다. 흡수탑의 입도분포는 재생탑의 입도분포와 거의 같았다. 흡수탑에서 유속과 정체층 높이가 증가함에 따라서 고체순환량과 새 흡수제 주입량은 증가하였다. 반면에 흡수탑 내 입자의 평균입경은 감소하였다. 흡수탑사이클론의 절단입도가 증가함에 따라서 고체순환속도는 감소하였으며, 새 흡수제 주입속도와 흡수탑 내 입자의 평균 입경은 증가하였다. 흡수제 입자의 마모계수가 증가함에 따라서 고체순환속도는 증가하고, 새 흡수제 주입속도는 증가하며, 흡수탑 내 입자의 평균입경은 감소하였다.

상전이 현상을 이용한 이산화탄소 포집공정개선 및 재생에너지 절감에 대한 연구 (A Study on the Regeneration Energy Reduction through the Process Improvement of the Carbon Dioxide Capture Process)

  • 김유미;김동선;조정호
    • 청정기술
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    • 제18권2호
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    • pp.221-225
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    • 2012
  • 본 연구에서는 용매 흡수법을 이용한 이산화탄소 포집공정에 액상 용매의 상전이 현상을 적용하여 온실가스의 재생에너지를 획기적으로 낮출 수 있는 공정에 대한 전산모사를 수행하였다. MEA 30 wt% 수용액에 온실가스인 이산화탄소를 용해시키면 이산화탄소의 mole loading 정도에 따라 두 상으로 상분리가 일어나는데 이 현상을 적용하면 본래의 흡수탑-탈거탑으로 구성된 공정에서보다 재생에너지를 약 61% 가량을 낮출 수 있다.

Column Removal of Trichloroethylene and Dichloromethane using Low Cost Activated Carbon

  • Radhika, M.;Lee, Young-Seak;Palanivelu, K.
    • Carbon letters
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    • 제11권1호
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    • pp.13-21
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    • 2010
  • Coconut shell activated carbon (CSAC) was investigated for its ability in the removal of two neutral chlorinated organic compounds, namely trichloroethylene (TCE) and dichloromethane (DCM) from aqueous solution using a packed bed column. The efficiency of the prepared activated carbon was also compared with a commercial activated carbon (CAC). The important design parameters such as flow rate and bed height were studied. In all the cases the lowest flow rate (5 mL/min) and the highest bed height (25 cm) resulted in maximum uptake and per cent removal. The experimental data were analysed using bed depth service time model (BDST) and Thomas model. The regeneration experiments including about five adsorption-desorption cycles were conducted. The suitable elutant selected from batch regeneration experiments (25% isopropyl alcohol) was used to desorb the loaded activated carbon in each cycle.

Investigation of Hydrate Inhibition System for Shallow Water Gas Field: Experimental Evaluation of KHI and Simulation of MEG Regeneration Process

  • Lee, Suk;Kim, Hyunho;Park, Ki-Heum;Seo, Yutaek
    • 한국해양공학회지
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    • 제34권5호
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    • pp.342-350
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    • 2020
  • In this study, a hydrate inhibition system is investigated for shallow water gas fields. Mono-ethylene glycol (MEG) injection has been used as a typical method for inhibiting hydrate formation in gas fields; therefore, most offshore platforms are equipped with MEG injection and regeneration processes. A recent application of a kinetic hydrate inhibitor (KHI) has reduced the total volume of MEG injection and hence reduce the operating cost. Experiments are designed and performed to evaluate and verify the KHI performance for inhibiting hydrate formation under shallow water conditions. However, the shut-in and restart operation may require the injection and regeneration of MEG. For this operation, the MEG concentration must be optimized while considering the cost of MEG regeneration. The obtained results suggest that decreasing MEG concentration from 80 wt% to 70 wt% can reduce the life cycle cost (LCC) of MEG regeneration process by approximately 5.98 million USD owing to reduced distillation column cost. These results suggest that the hydrate inhibition system must be evaluated through well-designed experiments and process simulations involving LCC analysis.